Claims
- 1. The combination of an air-to-fuel ratio control system and a fuel burning mechanism, said fuel burning mechanism having an adjustable air-fuel proportioning device, a combustion chamber and an exhaust conduit serially interconnected in flow communication whereby a selectively proportioned air-fuel mixture may be introduced from said proportioning device into said combustion chamber for combustion therein, and exhaust gases may be withdrawn therefrom through said exhaust conduit;
- said air to fuel ratio control system comprising:
- sensor means positioned in said exhaust gas conduit and having a range of response to the level of a gaseous component in the exhaust gas to produce a reference signal which varies between certain limits in a predetermined functional relation with said level;
- reset means operatively connected to said air-fuel proportioning device for periodically adjusting the air-to-fuel ratio by an amount sufficient to obtain a first value of said air-to-fuel ratio which first value produces a certain level of said component in the exhaust gas as determined by generation of a certain reference signal between said certain limits by said sensor means; and
- positioning means operatively connected to said proportioning device and responsive to said certain reference signal from said sensor means to adjust the air-to-fuel ratio to a second value which deviates from the first value by a selected amount, so that the air-to-fuel ratio is adjusted to said second value by said positioning means whenever said certain level of gaseous component in the exhaust gas is sensed by said sensor means.
- 2. The combination of claim 1 wherein said sensor means is an oxygen sensor means responsive to a range of oxygen level in the exhaust gas corresponding to operation about the stoichiometric air-to-fuel ratio and said second value of the air-to-fuel ratio results in a level of oxygen in the exhaust gas lying outside the sensor response range.
- 3. The combination of claim 1 or claim 2 wherein said positioning means is adjustable to enable selection of the amount of deviation from the first selected value which is imposed on said air-fuel metering means by said positioning means.
- 4. The combination of claim 3 wherein said fuel burning mechanism comprises a catalytic combustor.
- 5. The combination of claim 3 wherein said fuel burning mechanism comprises an internal combustion engine.
- 6. The combination of claim 5 further including an exhaust gas purification catalyst positioned in said exhaust conduit downstream of said sensor means.
- 7. The combination of claim 5 wherein said internal combustion engine is a natural gas fueled engine and said positioning means is configured to adjust the air-to-fuel ratio to a second value which is rich of stoichiometric.
- 8. The combination of claim 3 wherein said sensor means is an oxygen sensor means comprising zirconia whose responsiveness range embraces an oxygen level in the exhaust gas corresponding to operation about the stoichiometric air-to-fuel ratio, and said positioning means is configured to adjust the air-to-fuel ratio to a second value which is such as to result in an oxygen level in the exhaust gas which is outside the responsiveness range of said sensor.
- 9. The combination of claim 8 wherein said positioning means is configured to adjust the air-to-fuel ratio to rich of stoichiometric.
- 10. The combination of claim 8 wherein said positioning means is configured to adjust the air-to-fuel ratio to lean of stoichiometric.
- 11. The combination of claim 3 wherein said air fuel metering device includes adjustment means to change the air-to-fuel ratio setting of said metering device,
- said reset means comprises a first device means actuated by a resettable first timing means and operatively associated with said adjustment means to periodically drive said adjustment means to change the air-to-fuel setting of said metering device, and means to periodically reset said first timing means, and
- said positioning means comprises a second drive means activated by a second timing means and operatively associated with said adjustment means to change the air-to-fuel setting of said metering device in a direction opposite to that of said reset means.
- 12. The combination of claim 11 further including comparator means having input connectors and an output connector, said input connectors being connected, respectively, to a reference signal source and to said sensor to receive, respectively, a reference signal and the output signal of said sensor, and said output connector being connected to said second timing means to provide an actuating signal thereto upon said sensor output signal attaining a selected level relative to said reference signal.
- 13. The combination of an air-to-fuel ratio control system and an internal combustion engine having an adjustable air-fuel proportioning device, combustion cylinders and an exhaust gas conduit;
- said air-to-fuel ratio control system comprising:
- oxygen sensor means positioned in said exhaust gas conduit and having a range of response to the level of oxygen in the exhaust gas to produce a reference signal which varies between certain limits in a predetermined functional relation with said level, said range including stoichiometric operation;
- reset means operatively connected to said air-fuel proportioning device for periodically adjusting the air-to-fuel ratio by an amount sufficient to obtain a first value of said air-to-fuel ratio which first value produces a certain level of oxygen in the exhaust gas as determined by generation of a certain reference signal between said certain limits by said sensor means; and
- positioning means operatively connected to said proportioning device and responsive to said certain reference signal from said sensor means to adjust the air-to-fuel ratio to a second value which deviates from the first value by a selected amount and which results in a level of oxygen in the exhaust gas lying outside said response range, so that the air-to-fuel ratio is adjusted to said second value by said positioning means whenever said certain level of oxygen in the exhaust gas is sensed by said sensor means.
- 14. The combination of claim 13 wherein said sensor means is a zirconia sensor.
- 15. The combination of claim 13 or claim 14 wherein said internal combustion engine is a natural gas fueled engine and said positioning means are connected to adjust the air-to-fuel ratio to a second value which is rich of stoichiometric.
- 16. A method for controlling the air-to-fuel ratio of a fuel burning mechanism by utilizing the sensed level of a component in the exhaust gas, which method permits maintenance of the ratio at values which may result in exhaust gas levels of the component outside the response range of sensor means employed to sense the component level, said combustion mechanism having an adjustable air-fuel proportioning device, a combustion chamber and an exhaust conduit serially interconnected in flow communication whereby a selectively proportioned air-fuel mixture may be introduced from said metering device into said combustion chamber for combustion therein, and exhaust gases may be withdrawn therefrom through said exhaust conduit, the method comprising the steps of:
- periodically adjusting the air-to-fuel ratio by an amount sufficient to obtain a first value of said air-to-fuel ratio which first value produces a certain level of said component in the exhaust gas by establishing a certain response range-reference signal level from the sensor means which certain signal level corresponds to said certain level of said component, and detecting the generation of said certain signal level by the sensor means; and
- adjusting the air-to-fuel ratio in response to said certain signal level in a direction opposite to that employed to attain said first value and in an amount sufficient to attain a second value of the air-to-fuel ratio which deviates from the front value by a selected amount, whereby the air-to-fuel ratio is adjusted to said second value whenever said certain level of said component in the exhaust gas is sensed by the sensor means.
- 17. The method of claim 16 wherein the second value results in a level of said component in the exhaust gas which is outside the sensor response range.
- 18. The method of claim 16 or 17 wherein said sensor means is responsive to the level of oxygen in the exhaust gas and said component is oxygen.
- 19. The method of claim 18 including adjusting the air-to-fuel ratio in the lean direction to attain said first value and adjusting the air-to-fuel ratio in a rich direction to attain said second value, said second value being rich of stoichiometric.
- 20. The method of claim 18 including adjusting the air-to-fuel ratio in the rich direction to attain said first value and adjusting the air-to-fuel in a lean direction to attain said second value, said second value being lean of stoichiometric.
- 21. The method of claim 18 wherein the cumulative time the air-to-fuel ratio is set at said second value is greater than the cumulative time it is set at said first value.
- 22. The method of claim 18 wherein the average time interval the air-to-fuel ratio is set at said first value is from about 0.1 to 5 seconds and the average time interval the air to fuel ratio is set at said second value is from about one to ten minutes.
- 23. A method for controlling the air-to-fuel ratio of an internal combustion engine by utilizing the sensed level of oxygen in the exhaust gas, which method permits maintenance of the ratio at values which result in exhaust gas levels of oxygen outside the response range of sensor means employed to sense the oxygen level, said response range including stoichiometric operation, said internal combustion engine having and adjustable air-fuel proportioning device, combustion cylinders and an exhaust gas conduit, the method comprising the steps of:
- periodically adjusting the air-to-fuel ratio by an amount sufficient to obtain a first value of said air-to-fuel ratio which first value produces a certain level of oxygen in the exhaust gas by establishing a certain response range-reference signal level from the sensor means which certain signal level corresponds to said certain level of said component, and detecting the generation of said certain signal level by the sensor means; and
- adjusting the air-to-fuel ratio in response to said certain signal level in a direction opposite to that employed to attain said first value and in an amount sufficient to attain a second value of the air-to-fuel ratio which deviates from the first value by a selected amount, and which results in a level of oxygen in the exhaust gas which is outside the sensor means response range, whereby the air-to-fuel ratio is adjusted to said second value whenever said certain level of said component in the exhaust gas is sensed by the sensor means.
- 24. The method of claim 23 wherein said air-to-fuel ratio is adjusted in the lean direction to said first value and is adjusted in the rich direction to said second value, which second value is rich of stoichiometric.
Parent Case Info
This is a continuation of application Ser. No. 06/235,071, filed Feb. 13, 1981, now abandoned.
US Referenced Citations (10)
Continuations (1)
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Number |
Date |
Country |
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235071 |
Feb 1981 |
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